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US5413576A - Apparatus for treating spinal disorder - Google Patents

Apparatus for treating spinal disorder
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Publication number
US5413576A
US5413576AUS08/015,919US1591993AUS5413576AUS 5413576 AUS5413576 AUS 5413576AUS 1591993 AUS1591993 AUS 1591993AUS 5413576 AUS5413576 AUS 5413576A
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United States
Prior art keywords
rods
internal brace
spinal column
anchor
brace system
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
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US08/015,919
Inventor
Charles-Hilaire Rivard
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Centre Hospitalier Universitaire Saint Justine
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Individual
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Priority to US08/015,919priorityCriticalpatent/US5413576A/en
Application filed by IndividualfiledCriticalIndividual
Priority to AT94906114Tprioritypatent/ATE194063T1/en
Priority to DE69425046Tprioritypatent/DE69425046T2/en
Priority to DK94906114Tprioritypatent/DK0683644T3/en
Priority to EP94906114Aprioritypatent/EP0683644B1/en
Priority to AU59977/94Aprioritypatent/AU5997794A/en
Priority to JP6517481Aprioritypatent/JPH08509389A/en
Priority to PCT/CA1994/000068prioritypatent/WO1994017736A1/en
Priority to ES94906114Tprioritypatent/ES2149866T3/en
Priority to CA002155681Aprioritypatent/CA2155681C/en
Application grantedgrantedCritical
Publication of US5413576ApublicationCriticalpatent/US5413576A/en
Assigned to CENTRE DE RECHERCHE DE L'HOPITAL STE-JUSTINEreassignmentCENTRE DE RECHERCHE DE L'HOPITAL STE-JUSTINEASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: RIVARD, CHARLES-HILAIRE
Assigned to SIGULER GUFF DISTRESSED OPPORTUNITIES FUND III, LPreassignmentSIGULER GUFF DISTRESSED OPPORTUNITIES FUND III, LPSECURITY AGREEMENTAssignors: Fourth Dimension Spine, LLC, PARADIGM SPINE, LLC
Anticipated expirationlegal-statusCritical
Assigned to Fourth Dimension Spine, LLC, PARADIGM SPINE, LLCreassignmentFourth Dimension Spine, LLCRELEASE BY SECURED PARTY (SEE DOCUMENT FOR DETAILS).Assignors: SIGULER GUFF DISTRESSED OPPORTUNITIES FUND III, LP
Expired - Lifetimelegal-statusCriticalCurrent

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Abstract

An internal brace system includes a pair of implantable rods for mounting on either side of the spinal column co-extensive with a portion of the spinal column to be treated. Transverse bars rigidly connect the rods together in spaced-apart parallel arrangement to provide a unitary internal brace stabilizing structure. Pairs of anchors in the form of cuffs are provided with one of each pair on respective transverse processes of each selected vertebra in the portion of the spinal column to be treated. A flexible first tie member extends from each anchor cuff to a sleeve on a respective rod on either side of the spinal column for retaining individual vertebra in a predetermined location relative to the internal brace system and against torsional forces applied through the spinal column. A further anchor is provided on the spinous process of the selected vertebra. Second flexible tie members extend from the respective cuffs on the transverse processes to the anchor on the spinous process in order to prevent the cuffs from slipping off the transverse processes.

Description

BACKGROUND OF THE INVENTION
1. Field of the Invention
The present invention relates to an apparatus for use in the treatment of scoliosis.
2. Description of the Prior Art
Prior to 1962, scoliosis was treated with various external casts and/or bone grafts. Successive body casts of ever increasing height would be utilized to try to correct the spine from a disorder such as a lateral curve in the spinal column. External braces would still be employed in the treatment of minor scoliosis. However in the event of severe deformity of the spine, major surgery .involving bone grafts and the fusion of several vertebrae would be the only solution. The bone grafts and vertebrae fusion would sometimes cause serious complications throughout the patient's adult life.
In 1962, Paul Harrington proposed the use of implantable stainless steel rods which were placed adjacent the vertebral bodies and hooks on the rods were inserted under the laminae of selected vertebra. An excellent summary of the prior art devices based on the Harrington procedures can be found in U.K. patent application G.B. 2 096 465 A published Oct. 20, 1982 in the name of Kevin A. Bobechko. However it has since been found that it is still necessary to supplement the stainless steel rod with bone grafts as described in the Bobechko patent application.
Canadian Patent 1,262,322 issued Oct. 17, 1989 to Yves Cotrel also described a rod and hook system. Cotrel mounts the hooks with hook brackets to the vertebrae and then the hook brackets can be connected to a pair of rods as shown in FIG. 12. The assembly is rigid in that the hook brackets are locked to the rods against rotational or longitudinal movement. That section of the spine is thus kept rigid. However given the lack of flexibility, and the fact that the loads are completely transferred to the rod assembly, the assembly is not considered sufficiently strong and thus bone graft and fusion of the vertebrae must also be resorted to.
SUMMARY OF THE INVENTION
It is an aim of the present invention to provide an internal brace system to correct the spine disorder in the treatment of scoliosis.
It is a further aim of the present invention to provide an internal system which will eliminate the need in most cases of resorting to bone graft to supplement the support offered by the system.
It is still a further aim of the present invention to provide an internal brace system which will rely on normal loads being transmitted through the spine including the portion of the spine being subjected to treatment.
It is a further aim of the present invention to provide an internal brace system which would avoid the introduction of extraneous elements within the spinal canal such as hooks or wires.
It is a further aim of the present invention to provide an internal brace system made of material which is sufficiently strong to resist normal forces and loads which will be subjected to the spinal column and internal brace system.
A construction in accordance with the present invention comprises an internal brace system including at least a pair of implantable rods for mounting on either side of the spinal column coextensive with a portion of the spinal column to be treated, means for rigidly connecting the rods together in spaced apart parallel arrangement to provide a unitary internal brace stabilizing structure, pairs of anchor means provided one of each pair on respective transverse processes of each selected vertebra in the portion of the spinal column to be treated, first tie means extending from each anchor means to connection means on a respective rod on either side of the spinal column for retaining individual vertebra in a predetermined location relative to the internal brace system and against torsional forces applied through the spinal column.
In a more specific embodiment of the present invention, a further anchor means is provided on the spinous process of the selected vertebra, the anchors on the transverse processes are in the form of cuffs mounted on each transverse process and second tie means extend from the respective cuffs on the transverse processes to the anchor on the spinous process in order to prevent the cuffs from slipping off the transverse processes.
In a still more specific embodiment of the present invention, the means for connecting the first tie means to the respective rods includes a plurality of separate sleeves on the rods adapted to slide thereon and each first tie means is connected to a respective sleeve.
Thus, an internal brace system is provided to retain individual vertebra in a position approximating a correct position in a normal spine. The provision of at least a pair of rods in a unitary structure with tie means from each rod to a corresponding transverse process of a vertebra, retains the vertebra against the torsional forces inherent in the disorder which would cause the vertebra to rotate in the horizontal plane of the vertebra. The fact that the tie means are flexible permits loads to be transmitted through the portion of the spine coextensive with the internal brace system. The portion of the spinal column also has a limited flexibility since bone grafts are not used.
BRIEF DESCRIPTION OF THE DRAWINGS
Having thus generally described the nature of the invention, reference will now be made to the accompanying drawings, showing by way of illustration, a preferred embodiment thereof, and in which:
FIG. 1 is a rear elevation view of an embodiment of the internal brace system in accordance with the present invention as it would appear on a portion of a spinal column;
FIG. 2 is a side elevation of the embodiment shown in FIG. 1;
FIG. 3 is a fragmentary perspective view showing a single vertebra and details of the internal brace system in relation to the vertebra;
FIG. 4 is a top plan view of the embodiment shown in FIG. 3;
FIG. 5 is a plan view partly in crosssection of a detail shown in FIG. 3;
FIG. 6 is an end elevation of the detail shown in FIG. 5; and
FIG. 7 is a fragmentary perspective view showing a modified version of the detail shown in FIGS. 5 and 6.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
Aninternal brace system 10 is shown in FIGS. 1 and 2 in its assembled condition. Theinternal brace system 10 would be sold as a kit for implanting within the human body in a surgical procedure for the purpose of correcting a spinal column disorder involving a lateral curve with some torsion or rotation. It has been found that in patients suffering from scoliosis, that the vertebrae in the curved portion may be rotated horizontally due to torsional forces acting thereon. Theinternal brace system 10 would, as will be seen, retain the individual vertebra in a reoriented position approximating their position in a normal spinal column.
The kit making up theinternal brace system 10 would include a pair ofrods 12 and 14. Each of therods 12 and 14 may be curved to approximate a desirable longitudinal curve of the portion of the spinal column in which the correcting system is to be implanted. Therods 12 and 14 would, when assembled, includebars 16 and 18 which lock therods 12 and 14 in a unitary structure and act as a first means for rigidly connecting therods 12, 14 in a spaced parallel arrangement. Therods 12 and 14 are preferably made of titanium.
The spinal column S to which the internal brace system is to be applied includes a number of vertebrae Va . . . Vn, each including, for the purposes of this description transverse processes PL and PR and a spinous process T. The vertebrae Va . . . Vn would, in a patient suffering from scoliosis be curved laterally out of a longitudinal plane of the spine S and it would be necessary to rotate and realign each vertebra in longitudinal alignment and to be harnessed to theinternal brace system 10.
In the present embodiment, theinternal brace system 10 includes, a plurality of cuffs or anchor means 20 which can be mounted to individual transverse processes P and tie means in the form ofU-shape tie members 22 connecting thecuffs 20 in an articulated manner toindividual sleeves 24 slidably mounted on therods 12 and 14.
Referring now to FIGS. 3 and 4, the vertebra harness will be described in more detail. As shown in FIGS. 3 and 4, there is acuff 20a which is clasped to the transverse process PL and anidentical cuff 20b clasps to the transverse process PR. The U-shapedtie 22a connects thecuff 20a to thesleeve 24a onrod 12. Likewise the U-shapetie member 22b connects thecuff 20b to thesleeve 24b onrod 14.
Thecuff 20 is shown, in FIGS. 5 and 6, in detail and includes abase member 26 and a pair ofarms 28 and 30 withhinges 32 and 34 therebetween. Alocking pin 36 is hinged to thearm 30 by means ofhinge 38. Thepin 36 is threaded and adapted to receive anut 40. Thenut 40 locks the pin to thebase 26 as shown in FIGS. 5 and 6. Accordingly thecuff 20 will be able to fit any irregularity or size of transverse process because of the particular adjustable structure shown. Thebase 26 also has a jaw 42 to receive thebight portion 68 of the U-shapedtie 22. A lockingbolt 44 will close the jaw 42 once thebight 68 has been mounted in the jaw 42.
Thetie member 22 is best shown in FIGS. 3 and 4 and includes abight 68 with a pair ofparallel arms 70 and 72. Thesearms 70 and 72 includeslots 71 and 73 which engage the cap pins 74 onsleeve 24. Theslots 71 and 73 are provided with enlarged openings at the ends thereof in order for thearms 70 and 72 to be engaged on the cap pins 74. Accordingly the construction of thetie member 22 allows articulation and a degree of lateral movement to the vertebra V. However, since both transverse processes PL and PR are likewise anchored to therespective rods 12 and 14 the amount of horizontal rotation of the vertebra V will be very limited.
It is also believed that the structure will retain the vertebra in its assumed position approximating a normal position of the vertebra in a correct spinal column.
In order to prevent thecuffs 20a and 20b from slipping off the ends of the transverse processes PL and PR ananchor tube 78 will be provided on the spinous process T. In one embodiment a bore is drilled through the spinous process T and theanchor tube 78 is fitted therein. Lockingnuts 80 and 82 are provided at each end of thetube 78 and a flexible cord of synthetic material such as nylon is attached to eachcuff 20a and 20b as shown in FIGS. 3, 5, and 6. Thus thecord 84 will prevent thecuffs 20a and 20b from slipping off the ends of the transverse processes.
Theinternal brace system 10 is selected to be long enough to be coextensive with the portion of the spinal column S which is to be corrected. The ends of therods 12 and 14 are provided withheads 67 of square cross-section as shown, for instance, in FIG. 7. The square heads 67 of therods 12 and 14 will accommodate a modified version of the cuffs as shown in FIG. 7. Thecuff 46 in FIG. 7 includes the articulatedarms 50 and 52 as well as a lockingpin 58 andnut 60. However, thebase 48 will also include a tube 64 (rigid tie means) having a bore or opening 66 which has a square cross-section similar to the square cross-section of thehead 67 of therod 12.
The base 48 will have a length which is selected depending on the distance of theinternal brace system 10 from a correct vertebra as shown in FIG. 2. Likewise, at the other end of therod 12, a similar cuff 46a will be locked to a transverse process PL of a correct vertebra. Thus, the internalbrace assembly system 10 will be locked at each end to a correct vertebra, in this case the vertebra Vb and Vn while the vertebrae to be realigned are harnessed by means of thecuffs 20a and 20b andtie members 22 connected on the slidingsleeve 24a and 24b.
The provision of the slidingsleeves 24 andflexible ties 22 will allow limited movement of each vertebra and will allow the loads to be carried by the realigned spinal column S so as to simulate a more normal spinal column. The sleeve may have apolyethylene liner 76 to reduce friction.
Thebars 16 and 18 are provided with bores of square cross-section at each end thereof. These bores are dimensioned to the square heads 67 of therods 12 and 14, and withsuitable set screws 13 thebars 16 and 18 can be locked to the ends ofrods 12 and 14.
When theinternal brace system 10 is implanted, it is necessary to sever certain ligaments particularly between the spinous processes. It has been contemplated to attach biodegradable polymer ligaments between the spinous processes and probably between respective transverse processes. The polymer material, in one example, could include from 0% to 30% hydroxyvalerate and from 100% to 70% polyhydroxybutyrate. Ligaments of this material would slowly degrade while natural ligaments are regenerated. The material and its uses are described in G.B. Patent 1034 123 in the name of W. R. Grace & Co.

Claims (11)

I claim:
1. An internal brace system comprising:
a pair of implantable rods adapted to be on either side of a spinal column coextensive with a portion of the spinal column to be treated; first connecting means for rigidly connecting said rods together in a spaced-apart parallel arrangement to provide a unitary internal brace structure; pairs of anchor means for engaging a corresponding one of a plurality of selected vertebrae, each of said anchor means of each of said pairs of anchor means being adapted to be disposed on respective transverse processes of the corresponding one of said plurality of selected vertebrae in the portion of the spinal column to be treated; second connecting means for connecting to a respective rod of the internal brace structure on either side of the spinal column; first tie means for extending from each of said anchor means to respective ones of said second connecting means, said first tie means being articulated to allow relative movement of said corresponding one of said anchor means while retaining said anchor means in a predetermined location relative to the internal brace structure and through the selected vertebrae against torsional forces applied through the spinal column.
2. An internal brace system as defined in claim 1, wherein each of said anchor means are in the form of a cuff adapted to be mounted on a respective transverse process and the first tie means includes rigid link members articulately connected to each cuff.
3. An internal brace system as defined in claim 2, wherein each cuff includes a base portion and at least a pair of articulated arms extending from the base portion and adapted to be locked forming a loop with adjustable locking means to vary the size and shape of the loop to accommodate the respective transverse process of said corresponding one of the plurality of vertebrae.
4. An internal brace system as defined in claim 2, further comprising second anchor means adapted to be attached to a spinous process of at least one of the plurality of selected vertebrae and second tie means extending between the cuffs associated with the at least one of the plurality of selected vertebrae and the second anchor means for preventing said cuffs associated with the at least one of the plurality of selected vertebrae from slipping off the respective transverse processes.
5. An internal brace system as defined in claim 4, wherein the second tie means is in the form of a flexible, strong cord, the second anchor means for the spinous process includes a tube which is adapted to pass through the spinous process and means for locking the tube to the spinous process and the flexible cord extends through the tube such that each end of the flexible cord is connectable to one of said cuffs associated with at least one of the plurality of selected vertebrae.
6. An internal brace system as defined in claim 2, wherein the second connecting means on the rods are in the form of sleeves adapted to slide on the rods with each separate sleeve corresponding to a respective first tie means extending from each anchor means on the respective transverse process of the corresponding one of said plurality of said selected vertebrae.
7. An internal brace system as defined in claim 6, wherein each of said respective first tie means includes a rigid U-shaped bracket having a bight portion adapted to be engaged in an articulate manner with said cuff, the U-shaped bracket including a pair of parallel arms extending from the bight and each of said arms including an elongated slot adapted to be engaged on a cap pin on respective portions of each of said separate sleeves such that the brace system can slide relative to said separate sleeves.
8. An internal brace system as defined in claim 2, wherein the first connecting means for rigidly connecting the rods is in the form of detachable bars extending between the rods at each end of the rods thereof and rigid second tie means on each end cuff are connected directly to the ends of the rods for providing a rigid connection between each of the end cuffs associated with each of said plurality of selected vertebrae corresponding to the ends of the rods and the rods.
9. An internal brace system as defined in claim 8, further comprising locking set screws and wherein the ends of the rods have a square cross-section, said first bar means for rigidly connecting said rods together includes said detachable bars each having bores with a cross-section approximately the same as the square cross-section of the rods and said locking set screws lock the rods in the bores of the detachable bars providing the unitary structure.
10. An internal brace system as defined in claim 1, wherein the rods are made of titanium.
11. An internal brace system comprising: a pair of implantable rods adapted to be mounted on either side of a spinal column coextensive with a portion of the spinal column to be treated; first connecting means for rigidly connecting said rods together in a spaced-apart parallel arrangement to provide a unitary internal brace structure; pairs of anchor means for engaging a corresponding one of a plurality of selected vertebrae, each of said anchor means of each of said pairs of anchor means adapted to be disposed on respective transverse processes of the corresponding one of said plurality of selected vertebrae in the portion of the spinal column to be treated; second connecting means for connecting to a respective rod of the internal brace structure on either side of the spinal column; first tie means for extending from each of said anchor means to respective ones of said second connecting means, said first tie means articulately connected to said corresponding one of said plurality of said anchor means while retaining said corresponding one of said anchor means in a predetermined location relative to the internal brace structure and against torsional forces applied through the spinal column.
US08/015,9191993-02-101993-02-10Apparatus for treating spinal disorderExpired - LifetimeUS5413576A (en)

Priority Applications (10)

Application NumberPriority DateFiling DateTitle
US08/015,919US5413576A (en)1993-02-101993-02-10Apparatus for treating spinal disorder
ES94906114TES2149866T3 (en)1993-02-101994-02-09 APPARATUS FOR TREATING DISORDERS OF THE SPINE.
DK94906114TDK0683644T3 (en)1993-02-101994-02-09 Device for the treatment of spine disorders
EP94906114AEP0683644B1 (en)1993-02-101994-02-09Apparatus for treating spinal disorder
AU59977/94AAU5997794A (en)1993-02-101994-02-09Apparatus for treating spinal disorder
JP6517481AJPH08509389A (en)1993-02-101994-02-09 Spinal abnormality treatment device
AT94906114TATE194063T1 (en)1993-02-101994-02-09 DEVICE FOR TREATING SPINAL DISEASES
DE69425046TDE69425046T2 (en)1993-02-101994-02-09 DEVICE FOR TREATING SPINE DISEASES
CA002155681ACA2155681C (en)1993-02-101994-02-09Apparatus for treating spinal disorder
PCT/CA1994/000068WO1994017736A1 (en)1993-02-101994-02-09Apparatus for treating spinal disorder

Applications Claiming Priority (1)

Application NumberPriority DateFiling DateTitle
US08/015,919US5413576A (en)1993-02-101993-02-10Apparatus for treating spinal disorder

Publications (1)

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US5413576Atrue US5413576A (en)1995-05-09

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US08/015,919Expired - LifetimeUS5413576A (en)1993-02-101993-02-10Apparatus for treating spinal disorder

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CountryLink
US (1)US5413576A (en)
EP (1)EP0683644B1 (en)
JP (1)JPH08509389A (en)
AT (1)ATE194063T1 (en)
AU (1)AU5997794A (en)
DE (1)DE69425046T2 (en)
DK (1)DK0683644T3 (en)
ES (1)ES2149866T3 (en)
WO (1)WO1994017736A1 (en)

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EP0683644B1 (en)2000-06-28
DK0683644T3 (en)2000-11-13
ATE194063T1 (en)2000-07-15
DE69425046D1 (en)2000-08-03
EP0683644A1 (en)1995-11-29
ES2149866T3 (en)2000-11-16
AU5997794A (en)1994-08-29
JPH08509389A (en)1996-10-08
DE69425046T2 (en)2001-03-22
WO1994017736A1 (en)1994-08-18

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